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直线加速器辐射和机械轴准直的质量控制方法。

Quality control methods for linear accelerator radiation and mechanical axes alignment.

机构信息

Radiation Medicine Program, Princess Margaret Cancer Centre, Toronto, ON, M5G 2M9, Canada.

Department of Radiation Oncology, University of Toronto, Toronto, ON, M5T 1P5, Canada.

出版信息

Med Phys. 2018 Jun;45(6):2388-2398. doi: 10.1002/mp.12910. Epub 2018 May 3.

Abstract

PURPOSE

The delivery accuracy of highly conformal dose distributions generated using intensity modulation and collimator, gantry, and couch degrees of freedom is directly affected by the quality of the alignment between the radiation beam and the mechanical axes of a linear accelerator. For this purpose, quality control (QC) guidelines recommend a tolerance of ±1 mm for the coincidence of the radiation and mechanical isocenters. Traditional QC methods for assessment of radiation and mechanical axes alignment (based on pointer alignment) are time consuming and complex tasks that provide limited accuracy. In this work, an automated test suite based on an analytical model of the linear accelerator motions was developed to streamline the QC of radiation and mechanical axes alignment.

METHODS

The proposed method used the automated analysis of megavoltage images of two simple task-specific phantoms acquired at different linear accelerator settings to determine the coincidence of the radiation and mechanical isocenters. The sensitivity and accuracy of the test suite were validated by introducing actual misalignments on a linear accelerator between the radiation axis and the mechanical axes using both beam steering and mechanical adjustments of the gantry and couch.

RESULTS

The validation demonstrated that the new QC method can detect sub-millimeter misalignment between the radiation axis and the three mechanical axes of rotation. A displacement of the radiation source of 0.2 mm using beam steering parameters was easily detectable with the proposed collimator rotation axis test. Mechanical misalignments of the gantry and couch rotation axes of the same magnitude (0.2 mm) were also detectable using the new gantry and couch rotation axis tests. For the couch rotation axis, the phantom and test design allow detection of both translational and tilt misalignments with the radiation beam axis. For the collimator rotation axis, the test can isolate the misalignment between the beam radiation axis and the mechanical collimator rotation axis from the impact of field size asymmetry. The test suite can be performed in a reasonable time (30-35 min) due to simple phantom setup, prescription-based beam delivery, and automated image analysis. As well, it provides a clear description of the relationship between axes. After testing the sensitivity of the test suite to beam steering and mechanical errors, the results of the test suite were used to reduce the misalignment errors of the linac to less than 0.7-mm radius for all axes.

CONCLUSIONS

The proposed test suite offers sub-millimeter assessment of the coincidence of the radiation and mechanical isocenters and the test automation reduces complexity with improved efficiency. The test suite results can be used to optimize the linear accelerator's radiation to mechanical isocenter alignment by beam steering and mechanical adjustment of gantry and couch.

摘要

目的

使用强度调制和准直器、旋转机架和治疗床自由度生成的高度适形剂量分布的传递精度直接受到射束与直线加速器机械轴对准质量的影响。为此,质量控制 (QC) 指南建议辐射和机械等中心的对准容差为 ±1mm。用于评估辐射和机械轴对准的传统 QC 方法(基于指针对准)既耗时又复杂,且精度有限。在这项工作中,开发了一个基于直线加速器运动分析模型的自动化测试套件,以简化辐射和机械轴对准的 QC。

方法

所提出的方法使用在不同直线加速器设置下获取的两个简单任务特定体模的兆伏图像的自动分析来确定辐射和机械等中心的重合度。通过在直线加速器上使用束流转向和旋转机架和治疗床的机械调整引入辐射轴与机械轴之间的实际不对准,验证了测试套件的灵敏度和准确性。

结果

验证表明,新的 QC 方法可以检测到辐射轴与三个旋转机械轴之间的亚毫米不对准。使用提出的准直器旋转轴测试可以轻松检测到使用束流转向参数使辐射源位移 0.2mm。使用新的旋转机架和治疗床旋转轴测试也可以检测到相同大小的旋转机架和治疗床旋转轴的机械不对准(0.2mm)。对于治疗床旋转轴,由于辐射束轴与测试设计允许检测到体模和测试两者的平移和倾斜不对准。对于准直器旋转轴,该测试可以将光束辐射轴与机械准直器旋转轴之间的不对准与射束场大小不对称的影响隔离开来。测试套件可以在合理的时间内(30-35 分钟)完成,因为体模设置简单、基于处方的射束输送和自动图像分析。同样,它提供了轴之间关系的清晰描述。在测试测试套件对束流转向和机械误差的灵敏度后,测试套件的结果用于将直线加速器的所有轴的不对准误差降低到小于 0.7mm 半径。

结论

所提出的测试套件提供了辐射和机械等中心重合度的亚毫米评估,并且测试自动化通过旋转机架和治疗床的束流转向和机械调整降低了复杂性并提高了效率。测试套件的结果可用于通过旋转机架和治疗床的束流转向和机械调整来优化直线加速器的辐射到机械等中心的对准。

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